Senior HPC & GPU Infrastructure Engineer

Sciforium

San Francisco (CA)

On-site

USD 180,000 - 240,000

Full time

3 days ago
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Benefits offered by this job

Medical, dental, and vision insurance
401k plan
Daily lunch, snacks, and beverages
Flexible time off
Competitive salary and equity

Job summary

Sciforium is seeking a Senior HPC & GPU Infrastructure Engineer to own the health, reliability, and performance of a high-density GPU compute cluster. You will bridge hardware operations, distributed systems, and ML workflows, from Linux systems engineering to CUDA/ROCm stacks and vLLM debugging.

Ideal candidates have 5+ years in HPC/GPU environments, with deep Linux internals knowledge and strong scripting (Bash/Python).

Qualifications

  • Requires 5+ years in HPC, GPU cluster operations or similar roles.
  • Bachelor’s or Master’s in a technical field.
  • Strong CUDA/ROCm and GPU driver debugging experience.

Responsibilities

  • Own health, reliability, and performance of the GPU compute cluster.
  • Lead deployment of new GPU nodes and topology validation.
  • Maintain ML software stack (CUDA, PyTorch, JAX, vLLM) and driver stacks.

Skills

Linux systems engineering
SRE / reliability engineering
Kernel debugging
Networking security
Automation scripting
Python scripting

Education

Bachelor’s or Master’s degree in CS/CE/EE or related field

Tools

NVIDIA GPUs (H100/B200)
AMD GPUs (MI325x/MI355x)
CUDA Toolkit / cuDNN / NCCL
ROCm / ROCm stack
Linux kernel modules
GPFS / Lustre / NFS
NDMA / RDMA networking
SSH / VPN / iptables

Job description

Sciforium is an AI infrastructure company developing next-generation multimodal AI models and a proprietary, high-efficiency serving platform. Backed by multi-million-dollar funding and direct sponsorship from AMD with hands‑on support from AMD engineers the team is scaling rapidly to build the full stack powering frontier AI models and real‑time applications.

About the role

We are seeking a Senior HPC & GPU Infrastructure Engineer to take full ownership of the health, reliability, and performance of our GPU compute cluster. You will be the primary custodian of our high‑density accelerator environment and the linchpin between hardware operations, distributed systems, and machine learning workflows. This role spans everything from hands‑on Linux systems engineering and GPU driver bring‑up to maintaining the ML software stack (CUDA/ROCm, PyTorch, JAX, vLLM). If you love squeezing every bit of performance out of hardware, enjoy debugging GPUs at scale, and want to build world‑class AI infrastructure, this role is for you.

What you’ll do
  1. System Health & Reliability (SRE)
    • On-Call Response: Act as the primary responder for system outages, GPU failures, node crashes, and cluster‑wide incidents. Minimize downtime by resolving issues rapidly.

    • Cluster Monitoring: Implement and maintain monitoring for GPU health, thermal behavior, PCIe/NVLink topology issues, memory errors, and overall system load.

    • Vendor Liaison: Coordinate with data center staff, hardware vendors, and on‑site technicians for repairs, RMA processing, and physical maintenance of the cluster.

  2. Linux & Network Administration
    • OS Management: Install, patch, and maintain Linux distributions (Ubuntu / CentOS / RHEL). Ensure consistent configuration, kernel tuning, and automation for large node fleets.

    • Security & Access Controls: Configure VPNs, iptables/firewalls, SSH hardening, and network routing to secure our computer infrastructure.

    • Identity & Storage Management: Manage LDAP/FreeIPA/AD for user identity, and administer distributed file systems such as NFS, GPFS, or Lustre.

  3. GPU & ML Stack Engineering
    • Deployment & Bring‑Up: Lead deployment of new GPU nodes, including BIOS configuration, NUMA tuning, GPU topology validation, and cluster integration.

    • Driver & Kernel Management: Build and optimize kernel modules, maintain GPU drivers and runtime stacks for both NVIDIA (CUDA) and AMD (ROCm).

    • Software Stack Maintenance: Maintain and optimize ML frameworks and libraries PyTorch, JAX, CUDA toolkit, cuDNN, ROCm, NCCL, and supporting runtime systems.

    • Advanced Debugging: Troubleshoot complex interactions involving GPUs, compilers, ML frameworks, and distributed training runtimes (e.g., vLLM compilation failures, CUDA memory leaks, ROCm kernel crashes).

Ideal candidate profile
  • 5+ years of experience in HPC, GPU cluster operations, Linux systems engineering, or similar roles.

  • Bachelor’s or Master’s degree in Computer Science, Computer Engineering, Electrical Engineering, or a related technical field.

  • Strong expertise with NVIDIA (H100/B200) or AMD (MI325x/MI355x) GPUs, including driver and kernel‑level debugging.

  • Deep understanding of Linux internals, kernel modules, hardware bring‑up, and systems performance tuning.

  • Experience with network security, including VPNs, iptables/firewalld, SSH, and identity management (LDAP/FreeIPA/AD).

  • Proficiency in Bash and Python for scripting, automation, and workflow tooling.

  • Familiarity with ML software stacks: CUDA toolkit, cuDNN, NCCL, ROCm, JAX/PyTorch runtime behavior.

  • Deep debugging experience with NVLink/NVSwitch fabrics and RDMA networking.

Nice-to-have
  • Experience with job schedulers such as Slurm, Kubernetes, or Run:AI.

  • Exposure to vLLM, model serving optimizations, or inference systems.

  • Hands‑on experience with configuration management tools (Ansible, SaltStack, Terraform).

  • Previous experience supporting ML research teams in a startup or research‑heavy environment.

Benefits include
  • Medical, dental, and vision insurance

  • 401k plan

  • Daily lunch, snacks, and beverages

  • Flexible time off

  • Competitive salary and equity

Equal opportunity

Sciforium is an equal opportunity employer. All applicants will be considered for employment without attention to race, color, religion, sex, sexual orientation, gender identity, national origin, veteran or disability status.

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